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      Transcriptional responses of Candida glabrata biofilm cells to fluconazole are modulated by the carbon source.

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          Abstract

          Candida glabrata is an important human fungal pathogen known to trigger serious infections in immune-compromised individuals. Its ability to form biofilms, which exhibit high tolerance to antifungal treatments, has been considered as an important virulence factor. However, the mechanisms involving antifungal resistance in biofilms and the impact of host niche environments on these processes are still poorly defined. In this study, we performed a whole-transcriptome analysis of C. glabrata biofilm cells exposed to different environmental conditions and constraints in order to identify the molecular pathways involved in fluconazole resistance and understand how acidic pH niches, associated with the presence of acetic acid, are able to modulate these responses. We show that fluconazole treatment induces gene expression reprogramming in a carbon source and pH-dependent manner. This is particularly relevant for a set of genes involved in DNA replication, ergosterol, and ubiquinone biosynthesis. We also provide additional evidence that the loss of mitochondrial function is associated with fluconazole resistance, independently of the growth condition. Lastly, we propose that C. glabrata Mge1, a cochaperone involved in iron metabolism and protein import into the mitochondria, is a key regulator of fluconazole susceptibility during carbon and pH adaptation by reducing the metabolic flux towards toxic sterol formation. These new findings suggest that different host microenvironments influence directly the physiology of C. glabrata, with implications on how this pathogen responds to antifungal treatment. Our analyses identify several pathways that can be targeted and will potentially prove to be useful for developing new antifungals to treat biofilm-based infections.

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          Author and article information

          Journal
          NPJ Biofilms Microbiomes
          NPJ biofilms and microbiomes
          Springer Science and Business Media LLC
          2055-5008
          2055-5008
          2020
          : 6
          Affiliations
          [1 ] 1Center of Molecular and Environmental Biology, Department of Biology, University of Minho, Braga, Portugal.
          [2 ] 2Aberdeen Fungal Group, University of Aberdeen, Institute of Medical Sciences, Foresterhill, Aberdeen, UK.
          [3 ] 3LIBRO - Laboratório de Investigação em Biofilmes Rosário Oliveira, Center for Biological Engineering, University of Minho, Braga, Portugal.
          [4 ] 4LEPABE, Department of Chemical Engineering, University of Porto, Porto, Portugal.
          [5 ] VIB-KU Leuven Center for Microbiology, Flanders, Belgium.
          [6 ] 6Laboratory of Molecular Cell Biology, Institute of Botany and Microbiology, KU Leuven, Leuven, Belgium.
          [7 ] 7MRC Center for Medical Mycology, University of Exeter, Geoffrey Pope Building, Stocker Road, Exeter, UK.
          Article
          114
          10.1038/s41522-020-0114-5
          6978337
          31993211
          5fd38346-6cc3-41cb-9c4b-7a5f86bd21c3
          History

          Pathogens,Next-generation sequencing,Antimicrobials,Biofilms,Cellular microbiology

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